Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization
This paper presents the design and fabrication schemes of a magnetic system consisting of segmented permanent magnet (PM) blocks, back-iron and frame structures. Here, a frame structure aims to bind PM blocks and iron structure. Non-intuitive design of segmented PMs and back-iron are obtained using...
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doaj-83feaa38428c4396b14de719e35bcead2021-03-30T14:48:44ZengIEEEIEEE Access2169-35362021-01-0198649865810.1109/ACCESS.2021.30492719314140Design and Fabrication of Magnetic System Using Multi-Material Topology OptimizationTaehoon Jung0https://orcid.org/0000-0002-1594-0498Jaejoon Lee1https://orcid.org/0000-0001-5476-9235Jaewook Lee2https://orcid.org/0000-0001-7918-8314School of Mechanical Engineering, Gwangju Institute of Science and Technology, Gwangju, South KoreaSchool of Mechanical Engineering, Gwangju Institute of Science and Technology, Gwangju, South KoreaSchool of Mechanical Engineering, Gwangju Institute of Science and Technology, Gwangju, South KoreaThis paper presents the design and fabrication schemes of a magnetic system consisting of segmented permanent magnet (PM) blocks, back-iron and frame structures. Here, a frame structure aims to bind PM blocks and iron structure. Non-intuitive design of segmented PMs and back-iron are obtained using multi-material topology optimization formulation. Subsequently, a non-magnetic frame structure is designed through a post-processing procedure, which is proposed using the smoothed fields of optimized PM and back-iron densities. Final design results are converted into computer-aided design (CAD) models and fabricated using conventional or additive manufacturing techniques. Segmented PM blocks, and back-iron structures are processed using water-jet cutting and wire electrical discharge machining, respectively. A frame structure is fabricated by additive manufacturing using a multi-jet printing machine. Using the proposed schemes, two magnetic systems are successfully designed and fabricated, respectively, for maximizing the magnetic field inside a rectangular cavity, and maximizing the magnetic force generated with a C-core electromagnet.https://ieeexplore.ieee.org/document/9314140/Design optimizationpermanent magnetsironfinite element methodsmagnetic devicesmagnetic forces |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Taehoon Jung Jaejoon Lee Jaewook Lee |
spellingShingle |
Taehoon Jung Jaejoon Lee Jaewook Lee Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization IEEE Access Design optimization permanent magnets iron finite element methods magnetic devices magnetic forces |
author_facet |
Taehoon Jung Jaejoon Lee Jaewook Lee |
author_sort |
Taehoon Jung |
title |
Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization |
title_short |
Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization |
title_full |
Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization |
title_fullStr |
Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization |
title_full_unstemmed |
Design and Fabrication of Magnetic System Using Multi-Material Topology Optimization |
title_sort |
design and fabrication of magnetic system using multi-material topology optimization |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2021-01-01 |
description |
This paper presents the design and fabrication schemes of a magnetic system consisting of segmented permanent magnet (PM) blocks, back-iron and frame structures. Here, a frame structure aims to bind PM blocks and iron structure. Non-intuitive design of segmented PMs and back-iron are obtained using multi-material topology optimization formulation. Subsequently, a non-magnetic frame structure is designed through a post-processing procedure, which is proposed using the smoothed fields of optimized PM and back-iron densities. Final design results are converted into computer-aided design (CAD) models and fabricated using conventional or additive manufacturing techniques. Segmented PM blocks, and back-iron structures are processed using water-jet cutting and wire electrical discharge machining, respectively. A frame structure is fabricated by additive manufacturing using a multi-jet printing machine. Using the proposed schemes, two magnetic systems are successfully designed and fabricated, respectively, for maximizing the magnetic field inside a rectangular cavity, and maximizing the magnetic force generated with a C-core electromagnet. |
topic |
Design optimization permanent magnets iron finite element methods magnetic devices magnetic forces |
url |
https://ieeexplore.ieee.org/document/9314140/ |
work_keys_str_mv |
AT taehoonjung designandfabricationofmagneticsystemusingmultimaterialtopologyoptimization AT jaejoonlee designandfabricationofmagneticsystemusingmultimaterialtopologyoptimization AT jaewooklee designandfabricationofmagneticsystemusingmultimaterialtopologyoptimization |
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